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- W2023706199 abstract "In this paper, a robust online fault prediction method which combines sliding autoregressive moving average (ARMA) modeling with online least squares support vector regression (LS-SVR) compensation is presented for unknown nonlinear system. At first, we design an online LS-SVR algorithm for nonlinear time series prediction. A combined time series prediction method is then developed for nonlinear system prediction. The sliding ARMA model is used to approximate the nonlinear time series, meanwhile, the online LS-SVR is added to compensate for the nonlinear modeling error with external disturbance. The one-step-ahead prediction of the nonlinear time series is so achieved. Finally, the online method is applied into motor time series polluted by noise, and a fault decision function is defined to judge the fault information manifested by the predicted error. The experimental results show the effectiveness of the proposed method." @default.
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- W2023706199 date "2014-07-01" @default.
- W2023706199 modified "2023-10-16" @default.
- W2023706199 title "Online fault prediction for nonlinear system based on sliding ARMA combined with online LS-SVR" @default.
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- W2023706199 doi "https://doi.org/10.1109/chicc.2014.6895482" @default.
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